Single-crystalline hole-transporting layers for efficient and stable organic light-emitting devices

Efficient charge-carrier injection and transport in organic light-emitting devices (OLEDs) are essential to simultaneously achieving their high efficiency and long-term stability. However, the charge-transporting layers (CTLs) deposited by various vapor or solution processes are usually in amorphous...

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Veröffentlicht in:Light, science & applications science & applications, 2024-06, Vol.13 (1), p.136-13
Hauptverfasser: Ye, Gao-Da, Ding, Ran, Li, Su-Heng, Ni, Lei, Dai, Shu-Ting, Chen, Nian-Ke, Liu, Yue-Feng, Guo, Runda, Wang, Lei, Li, Xian-Bin, Xu, Bin, Feng, Jing
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Sprache:eng
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Zusammenfassung:Efficient charge-carrier injection and transport in organic light-emitting devices (OLEDs) are essential to simultaneously achieving their high efficiency and long-term stability. However, the charge-transporting layers (CTLs) deposited by various vapor or solution processes are usually in amorphous forms, and their low charge-carrier mobilities, defect-induced high trap densities and inhomogeneous thickness with rough surface morphologies have been obstacles towards high-performance devices. Here, organic single-crystalline (SC) films were employed as the hole-transporting layers (HTLs) instead of the conventional amorphous films to fabricate highly efficient and stable OLEDs. The high-mobility and ultrasmooth morphology of the SC-HTLs facilitate superior interfacial characteristics of both HTL/electrode and HTL/emissive layer interfaces, resulting in a high Haacke’s figure of merit (FoM) of the ultrathin top electrode and low series-resistance joule-heat loss ratio of the SC-OLEDs. Moreover, the thick and compact SC-HTL can function as a barrier layer against moisture and oxygen permeation. As a result, the SC-OLEDs show much improved efficiency and stability compared to the OLEDs based on amorphous or polycrystalline HTLs, suggesting a new strategy to developing advanced OLEDs with high efficiency and high stability. Organic single-crystalline films are employed as the hole-transporting layers for developing advanced OLEDs with high efficiency and high stability.
ISSN:2047-7538
2095-5545
2047-7538
DOI:10.1038/s41377-024-01484-4